Data Sheet. AEDR-872x 3-Channel Reflective Incremental Encoder (Analog Output) Description. Features. Applications
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1 AEDR-872x 3-Channel Reflective Incremental Encoder (Analog Output) Data Sheet Description The AEDR-872x encoder is a three-channel optical encoder with two channels differential analog and a third digital index output. The encoder is designed to operate over -20 C to 85 C temperature range and so is suitable for both commercial and industrial end applications. The encoder houses an LED light source and photodetecting circuitry in a single package. The small size of 3.95 mm (L) 3.4 mm (W) mm (H) allows it to be used even in a wide range of miniature commercial applications in which size and space is a primary concern. The AEDR-872x encoder, with two channels differential analog outputs (Sin, /Sin, Cos, /Cos) can be interfaced directly with most of the external interpolators available. As such, the encoder provides great design-in flexibility and easy integration into existing systems. Features Analog Output option: Two-channel differential analog output and with a digital index output mount leadless package: 3.95 mm (L) 3.4 mm (W) mm (H) Operating voltage of 5.0 V supply Built-in LED current regulation, and so no external biasing resistor is needed -20 C to 85 C absolute operating temperature High encoding resolution: 318 (lines/inch, LPI) Applications Ideal for high volume applications: Closed-loop stepper motors Miniature motors Printers and copiers Card readers Scanners Projectors Portable medical equipment Optometric equipment Consumer and industrial product applications
2 Output Waveform Analog Option P XA S X1 S X2 P XB S X3 S X4 / V X 12 V X 34 V CC 2 V PP V X 56 V X 78 P A P B S 1 S 2 S 3 S 4 CH I V CC rotation movement (anti- clockwise) V CC 2 V P V PP V OFFSET 0 V V M Test Parameter Definitions 2 Parameter Symbol Description Analog Peak-to-Peak V PP The peak-to-peak signal magnitude in V of the analog signal Analog Offset V OFFSET The offset in mv from the midpoint of the analog peak-to-peak signal to the zero voltage point Analog Peak/Valley Voltage V PA, V PB, V MA, V MB The value in V of the peak or valley of the analog signal (that is, one-sided reading) Analog Peak-to-Peak Voltage V PPA, V PPB The absolute difference between V P and V M of channel A or B Analog Crosspoint Voltage V X12, V X34, V X56, V X78 The intersections in V of channel A analog waveform with that of either channel B or its component Analog Offset Voltage V OFFSETA, OFFSETB The offset in mv from the midpoint of the analog peak-to-peak signal to 2.5 V
3 Absolute Maximum Ratings Parameter Value Storage Temperature, T S -20 C to 85 C Operating Temperature, T A -20 C to 85 C Supply Voltage, V CC 7 V Notes: 1. Exposure to extreme light intensity (such as from flashbulbs or spotlights) may cause permanent damage to the device. 2. CAUTION: To avoid damage or degradation induced by ESD, take normal static precautions when handling the encoder. 3. Proper operation of the encoder cannot be guaranteed if the maximum ratings are exceeded. Recommended Operating Conditions Parameter Symbol Min. Typ. Max. Units Notes Operating Temperature T A C Supply Voltage V CC V Ripple < 100 mv p-p Current I CC ma Max. Output Frequency F khz Radial Misalignment E R - - ± 0.2 mm Tangential Misalignment E T - - ± 0.2 mm Gap G mm Recommended Characteristics Parameter Symbol Min. Max. Unit Notes Window/Bar Ratio W W /W B Window/Bar Length L W 1.80 (0.071) - mm (inches) Specular Reflectance R f 60 - Reflective area [1] - 10 Non-reflective area Line Density LPmm lines/mm Notes: 1. Measurements from TMA µscan meter 2. LPmm = CPR/[2π.R op (mm)] LPI 318 lines/inch Encoder Pinouts VDDD VDDA VDDA VDDD AGND AGND DGND DGND / / CH I / / CH I Pin Configurations (Top View) Pin Configurations (Bottom View) 3
4 Recommended Setup For the Power Supply Pins Connect both V DDD, V DDA and their corresponding grounds (AGND and DGND) appropriately as follows. It is recommended that you use 22 µf and 0.1 µf for bypass capacitors on V DDD and V DDA and place them in parallel as close as possible to the power and the ground pins. Do not run CH I in parallel and close to the trace of analog signals. Always keep the trace routing and cable to the minimum length. VCC 0.1 µf 22 µf DGND VDDD VDDA 7 AGND 2 22 µf 0.1 µf 6 / 3 / CH I 5 / 4 CH I / Note: 1. Pin 9 is the center pad of the package. Encoding Characteristics Parameter Symbol Min. Typ. Max. Unit Peak-to-Peak Voltage (Average) V PPA, V PPB V Analog Offset Voltage V OFFSETA, V OFFSETB 0.45V CC 0.5V CC 0.55V CC V Voltage Reference (Midpoint of signal V pp ) V REF - V CC /2 - V Parameter Symbol Typ. Unit Index Pulse Width (Ungated) I 430 e State Width Error ΔS ±8 e Pulse Width Error ΔP ±12 e State X Width Error ΔS x ±5 e Pulse X Width Error ΔP x ±5 e Notes: 1. Typical values represent the average values of encoder performance in our factory-based setup conditions. 2. The optimal performance of the encoder depends on the motor/system setup condition of the individual customer. 4
5 Design Guideline The index bar (I-) track is opaque and the width is 3 x W B. The Index (I) track is reflective and the width is 3 W W. The dimension L W should be at least 1.8 mm. (Note: If L W shorter than 1.8 mm is required, please consult factory) There are 6 pairs of incremental track (1 pair= 1 W B and 1 W W ) between opaque and reflective index tracks. W W Note: Encoder id placed on top on this codewheel in this view Opaque W B 6 (W W +W B ) 3 W B (Index Bar Track) Reflective L W 3 W W (Index Track) design example The following demonstrates a codewheel design for R op of CPR for a 2-channel and a 3-channel encoder. Reflective Opaque Pitch= 360/CPR=360/865= W W and W B = 360/(2 CPR) = 360/(2 865)= pattern for a 2-channel encoder 865CPR 5
6 Opaque W W and W B = 360/(2 CPR) = 360/(2 865)= Index Width = 3 W W = Index Bar Width = 3 W B = Reflective pattern for a 3-channel encoder Note: The overall physical track count is reduced but not the counts per revolution (CPR). The CPR remains the same because the count during this index transition is generated by an intelligent signal processing circuit. Package Outline Drawing TOP VIEW 3.40±0.20 Note: Unless otherwise specified, 1. All dimensions in mm 2. Tolerance x.xx ± 0.15 mm 0.50 Center of Lens ± FRONT VIEW BACK VIEW
7 Recommended Land Pattern Package outline All dimensions in mm Tolerance x.xx ± 0.05 mm Encoder Placement Orientation and Positioning The AEDR-872x is designed such that both the emitter and the detector ICs are placed parallel to the window/bar orientation, with the encoder mounted on top of the codewheel (see below right). When properly oriented, the detector side will be closer to the center of codewheel than the emitter. More importantly, the center of the lens of the encoder unit must be aligned with the codewheel (R OP ), or more specifically tangential to the center point of L W (1/2 of the length of window). Emitter (LED) Placement orientation of the encoder s emitter and detector on the codewheel 2.62 Detector Center of the lens should be aligned with the R OP of the codewheel 7 Center of
8 Direction of Movement With the detector side of the encoder placed closer to the codewheel (see picture on the previous page), Channel A leads Channel B when the codewheel rotates anti-clockwise and vice versa (with the encoder mounted on top of the codewheel). The optimal gap setting recommended is between 0.5 to 1.0 mm (see the side view below). Encoder height = mm Gap = 0.5 to 1.0 mm Side View leads leads Top View Emitter Anti-clockwise Emitter Clockwise Note: Drawing not to scale Moisture Sensitivity Level The AEDR-872x is specified to Moisture Sensitive Level (MSL) 3. Precaution is required to handle this moisture-sensitive product to ensure the reliability of the product. Storage before use An unopened Moisture Barrier Bag (MBB) can be stored at < 40 C/90% RH for 12 months. It is not recommended that the MBB is opened before assembly. Control after the MBB is opened Encoder that will be subjected to reflow solder must be mounted within 168 hours of factory condition < 30 C/60% RH Control for unfinished reel Stored and sealed MBB with desiccant or desiccators at < 5% RH. Baking is required if: Humidity Indicator Card (HIC) is > 10% when read at 23 ± 5 C The encoder floor life exceeded 168 hours. Recommended baking condition: 60 ± 5 C for 20 hours (tape and reel), 125 ± 5 C for 5 hours (loose unit) 8
9 Recommended Lead-free Reflow Soldering Temperature Profile 250 Max. 235 C 200 Liquidus point 217 C sec Max Preheat Zone Average ramp up rate Average ramp down rate = 3 C/sec = 6 C/sec Preheat temperature = 150 C to 200 C Preheat time Time maintain above 217 C = 60 to 100 sec = 40 to 60 sec Peak Temperature = 235 C Time within 5 C of peak temperature = 20 to 30 sec Notes: 1. Reflow with peak temperature > 235 C may damage the component. 2. Due to treatment of high temperature, this clear compound may turn yellow after IR reflow. 3. Profile shown here is the actual readings from the thermocouple (attached to AEDR-872x as shown to the right) on the reflow board PCB. IC Mold Compound Reflow PCB Thermocouple LED Tape and Reel Information 9
10 Order Information AEDR 87xx x0x Output Signal Index Gating Packaging Resolution LPI Shipping Units 1 Digital 2 Analog 0 Gated 90ºe 1 Gated 180ºe 2 Gated 360ºe 3* Tag 360ºe 1 Tape and Reel pcs pcs Notes: Digital 3.3 V and 5 V operating mode Analog: 5 V operating mode only 3* applicable only for analog output DISCLAIMER: Avago s products and software are not specifically designed, manufactured or authorized for sale as parts, components or assemblies for the planning, construction, maintenenace or direct operation of a nuclear facility or for use in medical devices or applications. Customer is solely responsible, and waives all rights to make claims against Avago or its suppliers, for all loss, damage, expense or liability in connection with such use. For product information and a complete list of distributors, please go to our web site: Avago, Avago Technologies, and the A logo are trademarks of Avago Technologies in the United States and other countries. Data subject to change. Copyright Avago Technologies. All rights reserved. AV EN - June 6, 2014
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